School of Biological Science and Medical Engineering, Beihang University, Beijing, China.
AVIC Aerospace Life-support Industries, Xiangfan, China.
Appl Ergon. 2018 Jul;70:98-103. doi: 10.1016/j.apergo.2018.02.008. Epub 2018 Mar 20.
Hand dexterity is an important index to assess whether extravehicular activity (EVA) gloves are appropriately designed. Pressurized gloves and low temperature environments can both cause a decrease in hand dexterity. However, due to the difficulty in performing tests under extreme conditions, there has been no report on dexterity tests with gloves under pressure and low temperature. To fill this gap, we performed a dexterity test of EVA gloves with twelve male volunteers involved under the extreme conditions, which were created in the low-pressure simulation cabin with vaporized liquid nitrogen used to cool it down. A total of nine conditions were designed. Purdue pegboard test and nut fastening test were improved before being applied in a hand dexterity test. Completion times for both tests, finger temperatures and cold feeling of the hand were recorded and analyzed. Results showed that the completion times for both tests increased either as the temperature decreased or as the pressure increased. Furthermore, a combined effect of low temperature and pressure was observed. The study provides evidence in support of astronaut training and optimization of EVA glove productivity.
手灵活性是评估舱外活动(EVA)手套设计是否合理的重要指标。加压手套和低温环境都会导致手灵活性下降。然而,由于在极端条件下进行测试的难度,目前还没有关于加压和低温手套灵活性测试的报告。为了填补这一空白,我们在低压模拟舱中进行了一项有 12 名男性志愿者参与的 EVA 手套灵活性测试,该模拟舱使用蒸发液氮来冷却。总共设计了 9 种条件。在用于手灵活性测试之前,对 Purdue 钉板测试和螺母紧固测试进行了改进。记录并分析了这两个测试的完成时间、手指温度和手部的冷感。结果表明,随着温度的降低或压力的增加,两个测试的完成时间都增加了。此外,还观察到低温和压力的综合效应。该研究为宇航员训练和优化 EVA 手套生产效率提供了证据支持。